Laboratory of Inorganic Materials Chemistry (CMI), The University of Namur (FUNDP), 61, rue de Bruxelles, B-5000 Namur, Belgium.
Chem Soc Rev. 2011 Feb;40(2):860-85. doi: 10.1039/c0cs00024h. Epub 2011 Jan 7.
This critical review highlights the advances that have been made over recent years in the domain of whole-cell immobilisation and encapsulation for applications relating to the environment and human health, particularly focusing on examples of photosynthetic plant cells, bacteria and algae as well as animal cells. Evidence that encapsulated photosynthetic cells remain active in terms of CO(2) sequestration and biotransformation (solar driven conversion of CO(2) into biofuels, drugs, fine chemicals etc.), coupled with the most recent advances made in the field of cell therapy, reveals the need to develop novel devices based on the preservation of living cells within abiotic porous frameworks. This review shall corroborate this statement by selecting precise examples that unambiguously demonstrate the necessity and the benefits of such smart materials. As will be described, the handling and exploitation of photosynthetic cells are enhanced by entrapment or encapsulation since the cells are physically separated from the liquid medium, thereby facilitating the recovery of the metabolites produced. In the case of animal cells, their encapsulation within a matrix is essential in order to create a physical barrier that can protect the cells auto-immune defenders upon implantation into a living body. For these two research axes, the key parameters that have to be kept in mind when designing hybrid materials will be identified, concentrating on essential aspects such as biocompatibility, mechanical strength and controlled porosity (264 references).
这篇评论文章重点介绍了近年来在整个细胞固定化和封装领域的进展,这些进展与环境和人类健康有关,特别是关注光合植物细胞、细菌和藻类以及动物细胞的应用。有证据表明,封装的光合细胞在 CO2 固存和生物转化方面仍然保持活性(太阳能驱动的 CO2 转化为生物燃料、药物、精细化学品等),再加上细胞治疗领域的最新进展,表明需要开发基于在无生命多孔框架内保存活细胞的新型设备。本综述将通过选择明确证明这种智能材料的必要性和益处的精确示例来证实这一说法。正如将描述的那样,通过包埋或封装来增强对光合细胞的处理和利用,因为细胞与液体介质物理分离,从而便于回收产生的代谢物。对于动物细胞,必须将它们封装在基质中,以创建物理屏障,以便在将细胞植入活体时可以保护细胞自身的免疫防御细胞。对于这两个研究方向,在设计混合材料时必须牢记的关键参数将被确定,重点关注生物相容性、机械强度和可控孔隙率等重要方面(264 个参考文献)。